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Biology subjects

Yan, X.-y.

Publications and source records attributed to Yan, X.-y..

2 recordsLinked to original sources

Spatial specialization of antioxidant defenses dictates predation success in Myxococcus xanthus

Redox-based chemical warfare is a primary driver of microbial community assembly. Here, we show that the predatory bacterium Myxococcus xanthus employs a spatial division of labor between two inducible monofunctional catalases, mxKatB and mxKatE, to overcome prey-derived hydrogen peroxide (H2O2). Quantitative transcript analysis revealed distinct regulatory specificities: mxkatB was the dominant transcriptional responder to exogenous H2O2, whereas mxkatE was preferentially induced by UV irradiation. Biochemical analyses demonstrated strict compartmentalization of enzymatic activity. mxKatE functioned intracellularly, consistent with a role in mitigating endogenous genotoxic stress. In contrast, mxKatB, which harbors an N-terminal Sec-dependent signal peptide, was exclusively localized to the extracellular milieu. Targeted gene deletions corroborated these non-redundant physiological roles. {Delta}katE mutant exhibited severe growth defects and heightened sensitivity to UV and H2O2 yet retained full predation proficiency. Conversely, {Delta}katB mutant displayed unaltered vegetative fitness but were severely impaired in prey lysis due to oxidative inactivation of secreted bacteriolytic enzymes. Failure of cross-complementation confirmed that spatial localization, rather than catalytic capacity, dictates enzyme function. Our findings establish that M. xanthus deploys an extracellular catalase shield to protect its exoenzyme arsenal from prey-derived oxidants. This spatial specialization of antioxidant defenses represents a sophisticated strategy that directly determines the outcome of bacterial predation and shapes interspecies interactions within microbial communities. IMPORTANCEPredatory bacteria such as M. xanthus must withstand chemical defenses deployed by their prey. We show that M. xanthus uses a spatially specialized antioxidant system: an extracellular catalase (mxKatB) secreted to shield its lytic enzymes from prey-derived hydrogen peroxide, and an intracellular catalase (mxKatE) that handles endogenous oxidative stress. This division of labor reveals that bacterial antioxidant defenses can be compartmentalized to protect extracellular weaponry rather than the cell itself, adding a new dimension to how spatial organization of stress responses influences the outcome of microbial competition.

ecology↗

OsUVR8b, rather than OsUVR8a, plays a predominant role in rice UVR8-mediated UV-B response.

UV RESISTANCE LOCUS 8 (UVR8) has been identified in Arabidopsis thaliana as the receptor for UV-B radiation mediating photomorphogenic responses and acclimation to UV-B radiation. However, UVR8-mediated UV-B signaling pathways in rice, that has two proteins (UVR8a and UVR8b) with homology to AtUVR8, remain largely unknown. In this study, UVR8a and UVR8b were found to be expressed mainly in rice leaves and leaf sheaths, while the level of UVR8b was higher than that of UVR8a. In agreement with prior studies on AtUVR8, uvr8b and uvr8a uvr8b rice mutants exposed to UV-B showed reduced UVB-induced growth inhibition and upregulation of CHS and HY5 transcripts along with acclimation to UV-B, overexpressing UVR8a or UVR8b enhanced UV-B-induced growth inhibition and acclimation to UV-B, compared to wild-type plants. UV-B was able to enhance the interaction between CONSTITUTIVE PHOTOMORPHOGENESIS1 (COP1) with UVR8a/UVR8b, whereas the interaction intensity of REPRESSOR OF UV-B PHOTOMORPHOGENESIS2 (RUP2) with UVR8a was significantly higher than that with UVR8b. In addition, UVR8a and UVR8b were also found in the nucleus and cytoplasm, but OsUVR8 proteins were localized in nucleus in the absence of UV-B. The level of OsUVR8 monomer showed an invisible change in the leaves of rice seedlings transferred from white light to white light supplemented with UV-B, even UV-B can weaken the interactions of UVR8a or/and UVR8b. Therefore, both UVR8a and UVR8b, that have different location and response modes with Arabidopsis UVR8, function in the response of rice to UV-B radiation, whereas UVR8b plays a predominant role in this process.

plant biology↗